BACKGROUND
1. Field
[0001] The invention relates to a flexible display device.
2. Description of the Related Art
[0002] Recently, along with efforts to provide various forms of electronic devices, research/development
has been conducted to provide various forms of displays that are included in the electronic
devices.
[0003] Meanwhile, organic light-emitting display apparatuses that are self-emitting type
(or kind) display apparatuses require no additional light sources, and thus, they
may be driven by a low voltage, and may be formed to be thin and light. Also, organic
light-emitting display apparatuses have excellent characteristics, such as wide viewing
angles, high contrast and rapid response rates. All these features draw attention
to the organic light-emitting display apparatuses, as the next generation display
apparatus. Some display devices are flexible in the sense that they can be bent or
otherwise changed in shape. Such display devices can experience localised stress points
as a consequence of such activity. In certain cases, the levels of stress experienced
in this way can be damaging.
Whilst different to the subject-matter of the present disclosure, background art includes:
US2014065326,
JP2001255514,
US2015001483,
US2013221840, and
US2014300529.
US2014065326 describes a foldable display device including a flexible display panel and a cover
window on an outside of the flexible display panel. The cover window includes a foldable
region between plane regions that are on opposite sides of the cover window, and the
plane regions have a first hardness and the foldable region has a second hardness
that is smaller than the first hardness.
JP2001255514 describes a liquid crystal display device formed by constructing plural display regions,
constituted of display elements, each including a chiral nematic liquid crystal foldably
at a non-display region part. Gas or an elastic substance is sealed in space part
formed between sheet materials and at the non-display region part. The gas is preferably
at least one kind from among the group of air, nitrogen gas, rare gas, carbon dioxide
gas and fluorocarbon gas, and the elastic substance preferably has elastic modulus
of 150 kgf/mm
2 or lower.
US2015001483 describes an organic light emitting diode display including: a display layer including
a front display layer configured to display an image at a front of the organic light
emitting diode display and a bending display layer bent at an end of the front display
layer, and a thin film encapsulation layer covering the display layer. The thin film
encapsulation layer includes a front encapsulation layer disposed on the front display
layer and a bending encapsulation layer disposed on the bending display layer and
having a plurality of pores.
US2013221840 describes a display device comprising a flexible display screen and a body supporting
the flexible display screen. The body comprises a first body comprising a sloping
surface on a cross-section, a second body, and a third body comprising a sloping surface
on a cross-section. The body comprises a first bending portion provided between the
first body and the second body, and the sloping surface of the first body is attached
to the second body by the rotation of the first body.
US2014300529 describes a foldable display device including display panel and a driving circuit
on a flexible substrate. The display panel includes at least one bendable area and
a flat area. The flat area substantially maintains a same shape when the bendable
area is bent. The bendable area has a different configuration of pixels or pixel circuits
from the flat area.
SUMMARY
[0004] One or more example embodiments of the invention set out to provide a flexible display
device in which the mechanical reliability of the device can be preserved, despite
repeated shape transformations.
[0005] Additional aspects of the invention will be set forth in part in the description
which follows and, in part, will be apparent from the description, or may be learned
by practice of the presented embodiments.
[0006] According to the invention, there is provided a flexible display device according
to claim 1.
[0007] The ratio of the second Young's modulus to the first Young's modulus may be about
4×10 through 2×10
4.
[0008] The first organic material may include a silicon-based resin, and the second organic
material may include at least one selected from an acryl-based resin and an epoxy-based
resin.
[0009] A width of the at least one first organic region may be equal to or greater than
a width of the at least one folding region.
[0010] The at least one first organic region and the at least one second organic region
may be alternately arranged, repeatedly, along a second direction that crosses the
first direction.
[0011] The first direction and the second direction may be perpendicular to each other.
[0012] The flexible display device may be windable around an axis parallel to the first
direction.
[0013] A first elongation percentage of the organic encapsulating film in the first direction
may be smaller than a second elongation percentage of the organic encapsulating film
in the second direction.
[0014] The display unit may include an organic light-emitting device (OLED) and a thin film
transistor electrically coupled to the OLED.
[0015] The flexible display device may include a plurality of the inorganic encapsulating
film and a plurality of the organic encapsulating film, and the inorganic encapsulating
films and the organic encapsulating films may be alternately stacked.
[0016] The features of the invention are set out in the claims.
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] These and/or other aspects of the invention will become apparent and more readily
appreciated from the following description of example embodiments, taken in conjunction
with the accompanying drawings in which:
FIG. 1 is a perspective view of a flexible display device according to an example
embodiment of the invention;
FIG. 2 is a block diagram showing a configuration of an example embodiment of the
flexible display device of FIG. 1;
FIG. 3 is a cross-sectional view taken along a line I-I' of the flexible display device
of FIG. 1 showing an example embodiment of a thin film encapsulating layer;
FIG. 4 is an enlarged cross-sectional view of portion A of FIG. 3;
FIG. 5 is a cross-sectional view taken along the line I-I' of the flexible display
device of FIG. 1 showing another example embodiment of a thin film encapsulating layer;
FIG. 6 is a perspective view of an electronic device, according to another example
embodiment of the invention; and
FIG. 7 is a plan view of an example embodiment of an organic encapsulating layer of
a flexible display device of the electronic device of FIG. 6.
DETAILED DESCRIPTION
[0018] In the following detailed description, only certain example embodiments of the invention
are shown and described, by way of illustration. However, the example embodiments
are not intended to limit the present invention to particular modes of practice. In
the description of the present disclosure, certain explanations of related art are
not provided when it is deemed that they may unnecessarily obscure the essence of
the disclosure.
[0019] It will be understood that although the terms "first," "second," etc. may be used
herein to describe various components, these components should not be limited by these
terms. These terms are used to distinguish one component from another, not to limit
the components.
[0020] The terminology used herein is for the purpose of describing particular embodiments
and is not intended to limit the example embodiments. As used herein, the singular
forms "a," "an," and "the" are intended to include the plural forms as well, and vice
versa, unless the context clearly indicates otherwise. For example, although the present
disclosure refers to a display unit including a display area DA, the display unit
may include a plurality of display areas. Sizes of elements in the drawings may be
exaggerated for convenience of explanation. In other words, since sizes and thicknesses
of components in the drawings may be exaggerated or arbitrarily illustrated for convenience
of explanation, the following embodiments are not limited thereto.
[0021] In the description of the components, when a component is described as being formed
on or under another component, it includes cases in which the component is formed
directly on or under the other component and cases in which the component is formed
on or under the other component by including additional components interposed therebetween.
Similarly, in the context of the present application, when a first element is referred
to as being "coupled or connected to" a second element, it can be directly coupled
or connected to the second element or be indirectly coupled or connected to the second
element with one or more intervening elements interposed therebetween. Also, the reference
of on or under will be described with respect to the drawings, but the terms on or
under may interchangeable depending upon the point of view.
[0022] Reference will now be made in detail to embodiments of the invention, examples of
which are illustrated in the accompanying drawings. In the drawings, the same elements
are denoted by the same reference numerals, and a repeated explanation thereof will
not be given.
[0023] As used herein, the term "and/or" includes any and all combinations of one or more
of the associated listed items. Expressions such as "at least one of," when preceding
a list of elements, modify the entire list of elements and do not modify the individual
elements of the list.
[0024] Hereafter expressions of the kind of "may have", "may comprise", "preferably", etc.,
which render optional the features introduced by these expressions, should be construed
as expressions such as "have", "comprise", "actually", which render essential the
features introduced by these expressions, insofar as these features are comprised
in the independent claims.
[0025] FIG. 1 is a perspective view of a flexible display device 10 according to an example
embodiment of the invention. FIG. 2 is a block diagram showing a structure (or configuration)
of the flexible display device 10. FIG. 3 is a cross-sectional view of an example
embodiment of a cross-sectional plane taken along a line I-I' of FIG. 1. FIG. 4 is
an enlarged cross-sectional view of a portion A of FIG. 3.
[0026] The flexible display device 10 has a modifiable shape. For example, the flexible
display device 10 may be folded or rolled. The flexible display device 10 may be realized
as various suitable shapes (or devices), such as smart phones, tablet personal computers
(PCs), notebook computers, wearable devices, electronic books, etc.
[0027] The flexible display device 10 may be transformed into a folded state or an unfolded
state as shown in FIG. 1. Here, the "folded state" includes a "bent state." When the
flexible display device 10 is folded at or based on a folding region F, the folded
state includes not only a state in which surfaces of the flexible display device that
face each other, contact (e.g., physically contact) each other, but also a state in
which the surfaces that face each other are adjacent to each other, while not contacting
(e.g., physically contacting) each other.
[0028] According to embodiments of the flexible display device 10, a screen may be converted
according to the folded state or the unfolded state. For example, when the flexible
display device 10 is in the unfolded state, an image may be realized or displayed
in a display area DA. Embodiments of the flexible display device 10 may be converted
from the folded state to the unfolded state and vice versa.
[0029] To this end, the flexible display device 10 may include a display unit including
the display area DA, a sensing unit 130 capable of detecting a shape of the flexible
display device 10, and a controller 120 capable of controlling an operation of the
display unit 200, according to the shape detected by the sensing unit 130.
[0030] The display unit 200 may include, for example, an organic light-emitting device (OLED)
200b. The display unit 200 will be described in more detail later with respect to
FIGS. 3 and 4.
[0031] The sensing unit 130 detects the shape of the flexible display device 10. For example,
the sensing unit 130 may detect a folding operation and/or an unfolding operation
of the flexible display device 10.
[0032] In some example embodiments, the sensing unit 130 may sense an operation in which
the flexible display device 10 is transformed from a folded state into an unfolded
state, or an operation in which the flexible display device 10 is transformed from
the unfolded state to the folded state. The sensing unit 130 may have a state detecting
sensor. The state detecting sensor may include at least one selected from a proximate
sensor, an illuminance sensor, a magnetic sensor, a hall sensor, a touch sensor, a
bending sensor, an infrared sensor, or may include a combination thereof.
[0033] In other example embodiments, the sensing unit 130 may detect whether a current state
of the flexible display device 10 is an unfolded state or a folded state, and if the
current state changes, the sensing unit 130 may detect a folding operation and/or
an unfolding operation.
[0034] The controller 120 controls the operation of the display unit 200, according to a
result of detecting via the sensing unit 130. For example, the controller 120 may
block a signal and power supplied to the display unit 200, when the flexible display
device 10 is in the folded state. Also, when the display unit 200 is a dual-emission
type (or kind), and another screen (another display area) is realized or displayed
on or via a flexible substrate 100 exposed to the outside when the flexible display
device 10 is folded, the controller 120 may adjust sizes and arrangement of the screen
(e.g., the other display area and/or the display area DA), according to the folded
state and/or the unfolded state.
[0035] The display unit 200 may be formed on the flexible substrate 100 and may be encapsulated
by a thin film encapsulating layer 300.
[0036] The flexible substrate 100 may be formed of a plastic material which has excellent
thermal resistance and durability, such as polyimide, polyethylene terephthalate (PET),
polycarbonate, polyethylene naphthalate, polyarylate (PAR), and polyetherimide.
[0037] The display unit 200 includes the display area DA capable of realizing an image.
A pad portion may be arranged around the display area DA to transfer electrical signals
from a power supply device or a signal generator to the display area DA.
[0038] The display unit 200 may include a thin film transistor (TFT) 200a and the OLED 200b.
However, the present disclosure is not limited thereto. The display unit 200 may also
include a liquid crystal device and/or other display devices. Hereinafter, the display
unit 200 will be described in more detail with respect to FIG. 4.
[0039] A buffer layer 212 may be formed on the flexible substrate 100. The buffer layer
212 may be formed on the entire surface of the flexible substrate 100. For example,
the buffer layer 212 may be formed both in the display area DA and outside the display
area DA. The buffer layer 212 prevents impurity elements from penetrating into the
flexible substrate 100 (or reduces a likelihood or amount of such impurity penetration),
and planarizes the flexible substrate 100. The buffer 212 may be formed of various
suitable materials which may planarize the substrate and protect the substrate from
impurities.
[0040] For example, the buffer layer 212 may include an inorganic material, such as silicon
oxide, silicon nitride, silicon oxynitride, aluminum oxide, aluminum nitride, titanium
oxide, and titanium nitride, or an organic material, such as polyimide, polyester,
and acryl. The buffer layer 212 may be formed as a stack of the inorganic materials
or the organic materials.
[0041] The TFT 200a may be formed on the flexible substrate 100. The TFT 200a may include
an active layer 221, a gate electrode 222, a source electrode 223, and a drain electrode
224.
[0042] The active layer 221 may be formed of an inorganic semiconductor, such as silicon,
or an organic semiconductor. Also, the active layer 221 includes a source area, a
drain area, and a channel area between the source area and the drain area. For example,
when the active layer 221 is formed by using amorphous silicon, an amorphous silicon
layer is formed throughout the flexible substrate 100, and the amorphous silicon layer
is crystallized to form a polycrystalline silicon layer. Then, the polycrystalline
silicon layer is patterned, and the source area and the drain area are doped with
impurities, so that the active layer 221 including the source area, the drain area,
and the channel area between the source area and the drain area, is formed.
[0043] A gate insulating layer 213 is formed on the active layer 221. The gate insulating
layer 213 is to insulate the active layer 221 and the gate electrode 222 (to insulate
the active layer 221 from the gate electrode 222), and may be formed of an inorganic
material, such as SiNx (1 < x < 2: e.g., x = 1.33) and SiO
2.
[0044] The gate electrode 222 is formed on a pre-determined (or set) area of the gate insulating
layer 213. The gate electrode 222 is coupled or connected to a gate line capable of
applying an on/off signal of the TFT 200a. The gate electrode 222 may include Au,
Ag, Cu, Ni, Pt, Pd, Al, or Mo, and/or may include an alloy, such as AI:Nd and Mo:W.
However, the gate electrode 222 is not limited thereto, and may be formed of various
suitable materials in consideration of design conditions.
[0045] An interlayer insulating layer 214 formed on the gate electrode 222 is to insulate
between the gate electrode 222 and the source electrode 223 (to insulate the gate
electrode 222 from the source electrode 223), and to insulate between the gate electrode
222 and the drain electrode 224 (to insulate the gate electrode 222 from the drain
electrode 224). The interlayer insulating layer 214 may be formed of an inorganic
material, such as SiNx (1 < x < 2: e.g., x = 1.33) and SiO
2.
[0046] The source electrode 223 and the drain electrode 224 are formed on the interlayer
insulating layer 214. For example, the interlayer insulating layer 214 and the gate
insulating layer 213 are formed so as to expose the source area and the drain area
of the active layer 221, and the source electrode 223 and the drain electrode 224
are formed so as to contact the exposed source area and drain area of the active layer
221.
[0047] The source electrode 223 and the drain electrode 224 may be formed as a single layer
or multiple layers (a plurality of layers), by using at least one material selected
from Al, Pt, Pd, Ag, Mg, Au, Ni, Nd, Ir, Cr, Li, Ca, Mo, Ti, W, and Cu.
[0048] Meanwhile, although FIG. 4 illustrates a top gate type (or kind) of TFT 200a which
sequentially includes the active layer 221, the gate electrode 222, the source electrode
223, and the drain electrode 224, the present disclosure is not limited thereto, and
the gate electrode 222 may be disposed under the active layer 221.
[0049] The TFT 200a is electrically coupled or connected to the OLED 200b and applies a
signal for driving the OLED 200b to the OLED 200b. The TFT 200a may be protected by
being covered by a planarization layer 215.
[0050] The planarization layer 215 may be formed of an inorganic insulating layer and/or
an organic insulating layer. The inorganic insulating layer may include SiO
2, SiNx (1 < x < 2: e.g., x = 1.33), SiON, Al
2O
3, TiO
2, Ta
2O
5, HfO
2, ZrO
2, BST, or PZT, and the organic insulating layer may include polymethylmethacrylate
(PMMA), polystyrene (PS), a polymer derivative having a phenol group, an acryl-based
polymer, an imide-based polymer, an aryl ether-based polymer, an amide-based polymer,
a fluorine-based polymer, a p-xylene-based polymer, a vinyl alcohol-based polymer,
or a blend thereof. Also, the planarization layer 215 may be formed as a combination
of the inorganic insulating layer and the organic insulating layer.
[0051] The OLED 200b may be formed on the planarization layer 215. The OLED 200b may include
a pixel electrode 231, an intermediate layer 232, and an opposite electrode 233.
[0052] The pixel electrode 231 is formed on the planarization layer 215, and is electrically
coupled or connected to the source electrode 223 and the drain electrode 224 via a
contact hole 230 formed in the planarization layer 215.
[0053] The pixel electrode 231 may be a reflection electrode (a reflective electrode), and
may include a reflective layer formed of Ag, Mg, Al, Pt, Pd, Au, Ni, Nd, Ir, Cr, or
a compound (e.g., an alloy) thereof, and a transparent or half-transparent (semi-transparent)
electrode layer formed on the reflective layer. The transparent or half-transparent
(semi-transparent) electrode layer may include at least one selected from the group
consisting of indium tin oxide (ITO), indium zinc oxide (IZO), zinc oxide (ZnO), indium
oxide (In
2O
3), indium gallium oxide (IGO), and aluminum zinc oxide (AZO).
[0054] The opposite electrode 233 disposed to face the pixel electrode 231 may be a transparent
or half-transparent (semi-transparent) electrode, and may be formed of a metal thin
film having a low work function, such as Li, Ca, LiF/Ca, LiF/Al, Al, Ag, Mg, and a
compound (e.g., an alloy) thereof. Also, an auxiliary electrode layer or a bus electrode
may further be formed on the metal thin film, by using a material for forming a transparent
electrode, such as ITO, IZO, ZnO, and In
2O
3.
[0055] Accordingly, the opposite electrode 233 may transmit light emitted from an organic
emission layer included in the intermediate layer 232. For example, the light emitted
from the organic emission layer may be directly emitted or reflected by the pixel
electrode 231 formed of the reflection electrode (reflective electrode) to be emitted
to the opposite electrode 233.
[0056] However, the display unit 200 according to the present example embodiment is not
limited to a top-emission type (or kind), and may also be a bottom emission type (or
kind) in which the light emitted from the organic emission layer is emitted to the
flexible substrate 100. In this case, the pixel electrode 231 may be formed as a transparent
or a half-transparent (semi-transparent) electrode, and the opposite electrode 233
may be formed as a reflection electrode (a reflective electrode). Also, the display
unit 200 according to the present example embodiment may be a dual-emission type (or
kind) emitting light in both the top and bottom directions.
[0057] Meanwhile, a pixel-defining layer 216 is formed on the pixel electrode 231 by using
an insulating material. The pixel-defining layer 216 may be formed of at least one
organic insulating material selected from the group consisting of polyimide, polyamide,
an acryl resin, benzocyclobutane, and a phenol resin, by using a spin coating method,
etc. The pixel-defining layer 216 exposes a pre-determined (or set) area of the pixel
electrode 231, and the intermediate layer 232 including the organic emission layer
is located at or in the exposed area.
[0058] The organic emission layer included in the intermediate layer 232 may be a low molecular
weight organic material or a high molecular weight organic material. Also, in addition
to the organic emission layer, the intermediate layer 232 may further include function
layers (functional layers), such as a hole transport layer (HTL), a hole injection
layer (HIL), an electron transport layer (ETL), and an electron injection layer (EIL),
selectively.
[0059] A thin film encapsulating layer 300 is disposed on the opposite electrode 233. The
thin film encapsulating layer 300 is formed to cover throughout the display unit 200
to prevent external moisture or oxygen from penetrating into the display unit 200
(or to reduce a likelihood or amount of such external moisture or oxygen penetration).
The thin film encapsulating layer 300 may be formed to have a greater area than the
display unit 200 such that all edges of the thin film encapsulating layer 300 contact
the flexible substrate 100, thereby more reliably preventing or reducing the penetration
of external elements.
[0060] The thin film encapsulating layer 300 may include at least one inorganic encapsulating
film 310 or 330 (e.g., a first inorganic encapsulating film 310 and/or a second inorganic
encapsulating film 330), and at least one organic encapsulating film 320. The at least
one inorganic encapsulating film 310 or 330, and the at least one organic encapsulating
film 320 may be alternately stacked. In the embodiment shown in FIG. 3, the thin film
encapsulating layer 300 includes two inorganic encapsulating films 310 and 330 (e.g.,
the first inorganic encapsulating film 310 and the second inorganic encapsulating
film 330) and one organic encapsulating film 320. However, the present disclosure
is not limited thereto. For example, the thin film encapsulating layer 300 may include
a plurality of inorganic encapsulating films and a plurality of organic encapsulating
films, which are alternately arranged, and the number of the inorganic encapsulating
films and the organic encapsulating films is not particularly limited.
[0061] The first inorganic encapsulating film 310 and the second inorganic encapsulating
film 330 may include at least one material selected from the group consisting of silicon
nitride, aluminum nitride, zirconium nitride, titanium nitride, hafnium nitride, tantalum
nitride, silicon oxide, aluminum oxide, titanium oxide, tin oxide, cerium oxide, and
silicon oxynitride. The first inorganic encapsulating film 310 and the second inorganic
encapsulating film 330 may each be formed to have a thickness of 5,000 Å to 10,000
Å, and may be formed to be larger than the organic encapsulating film 320 disposed
between the first and second inorganic encapsulating films 310 and 330.
[0062] Also, the second inorganic encapsulating film 330 may be formed to be larger than
the first inorganic encapsulating film 310 so as to directly contact the interlayer
insulating layer 214 outside the display area DA. Here, the second inorganic encapsulating
film 330 and the interlayer insulating layer 214 are formed of the same or substantially
the same material so that adhesion between the second inorganic encapsulating film
330 and the interlayer insulating layer 214 may be improved. Thus, delamination of
the second inorganic encapsulating film 330 may be prevented or reduced, and thus,
penetration of external moisture or oxygen may be effectively prevented or reduced.
[0063] The organic encapsulating film 320 may be formed to have a pre-determined (or set)
thickness, for example a thickness of 30,000 Å to 50,000 Å, in order to planarize
a height due to the pixel-defining layer 216. The organic encapsulating film 320 may
reduce stress generated in the first inorganic encapsulating film 310 and the second
inorganic encapsulating film 330, and may planarize the first inorganic encapsulating
film 310, on which there might be particles or defects. Meanwhile, the organic encapsulating
film 320 may be formed to be smaller (e.g., to have a smaller surface area) than the
first inorganic encapsulating film 310 and the second inorganic encapsulating film
330. Accordingly, the entire organic encapsulating film 320 is covered by the first
inorganic encapsulating film 310 and the second inorganic encapsulating film 330 so
that penetration of external moisture or oxygen may be effectively prevented or reduced.
[0064] As shown in FIG. 3, the organic encapsulating film 320 may include at least one first
organic region 322 including a first organic material, and at least one second organic
region 324 including a second organic material that is different from the first organic
material. The first organic region 322 may extend in a first direction X, and the
first organic region 322 and the second organic region 324 may be aligned (substantially
aligned) with each other. Here, the first direction X refers to a direction in which
a folding region F is formed, when the flexible display device 10 is folded at or
in the folding region F. Thus, the first direction X is not limited to the direction
illustrated in FIG. 1.
[0065] A first Young's modulus of the first organic region 322 is different from a second
Young's modulus of the second organic region 324. The Young's modulus denotes an elasticity
indicating a degree of extension and transformation of an object, when the object
is lengthened (or stretched) out from two directions. As the Young's modulus is increased,
the organic encapsulating film 320 has a greater degree of rigidity, and adhesion
and resilience may be increased. On the other hand, as the Young's modulus is decreased,
the organic encapsulating film 320 may have a greater degree of elongation.
[0066] The first Young's modulus is smaller than the second Young's modulus, and a ratio
of the second Young's modulus to the first Young's modulus may be 4×10 through 2×10
4. The first organic region 322 may be formed to overlap the folding region F of the
flexible display device 10. Thus, even if the flexible display device 10 is folded
at or in the folding region F or is bent by a small radius of curvature, stress applied
in the folding region F may be suitably or effectively distributed by the first organic
region 322. Meanwhile, although FIG. 1 illustrates that the flexible display device
10 includes one folding region F, it is not limited thereto. For example, the flexible
display device 10 may include two or more folding regions F spaced apart from each
other, and the first organic region 322 may be present or formed in a multiple number
(a plurality) to respectively correspond to a number of the two or more folding regions
F.
[0067] Also, in order to suitably or effectively distribute the stress applied in the folding
region F when the flexible display device 10 is folded, the first organic region 322
may have a width W
2 that is greater than a width W
1 of the folding region F. Here, the width W
2 of the first organic region 322 and the width W
1 of the folding region F denote distances measured in a second direction Y that is
perpendicular (e.g., substantially perpendicular) to the first direction X. Meanwhile,
when the width W
2 of the first organic region 322 is too great, the organic encapsulating film 320
may have a reduced adhesion, and thus, the width W
2 of the first organic region 322 may be formed to be equal to or less than two times
the width W
1 of the folding region F. On the other hand, when the width W
2 of the first organic region 322 is too small, it is hard to suitably or effectively
distribute the stress applied in the folding region F and the first organic region
322 may be formed in or at a location in which the first organic region 322 does not
overlap the folding region F, due to a process margin, and thus, the width W
2 of the first organic region 322 may be formed to be equal to or greater than 1.2
times the width W
1 of the folding region F.
[0068] The first organic region 322 and the second organic region 324 may be formed by using
an inkjet printing method. For example, the second organic material may be firstly
inkjet-printed in or at portions except the portion in which the first organic region
322 is to be formed, and then, the first organic material may be inkjet-printed to
form the first organic region 322. By this process, the first organic region 322 and
the second organic region 324 may be formed such that respective side surfaces of
the first organic region 322 and the second organic region 324 contact each other
(e.g., physically contact each other). In other example embodiments, the first organic
region 322 and the second organic region 324 may be formed in a different order (e.g.,
first organic material may be inkjet-printed first and the second organic material
may be inkjet-printed second). Also, the first organic material and the second organic
material may be concurrently or simultaneously inkjet-printed by using two heads,
to concurrently or simultaneously form the first organic region 322 and the second
organic region 324.
[0069] The first organic material may include a silicon-based resin, and a first Young's
modulus of the first organic region 322 formed of the first organic material may be
0.001 through 0.05 Gpa. The second organic material may include at least one selected
from an acryl-based resin and an epoxy-based resin, and a second Young's modulus of
the second organic region 324 may be 2 through 20 Gpa.
[0070] Meanwhile, a capping layer and a protection layer may further be formed or included
between the opposite electrode 233 and the thin film encapsulating layer 300.
[0071] The capping layer may be formed of an organic material, such as a-NPD, NPB, TPD,
m-MTDATA, Alq3, or CuPc, and may help light generated from the OLED 200b be effectively
emitted, while also protecting the OLED 200b.
[0072] A blocking layer may be formed of an inorganic material, such as LiF, MgF2, or CaF2,
and may block a plasma, so that the plasma used when forming the first inorganic encapsulating
film 310 does not penetrate or substantially penetrate the OLED 200b to cause damage
to the intermediate layer 232 and the opposite electrode 233.
[0073] FIG. 5 is a cross-sectional view of an example embodiment of a thin film encapsulating
layer 300' of the flexible display device 10 of FIG. 1.
[0074] Referring to FIGS. 5 and 1, the thin film encapsulating layer 300' includes three
inorganic encapsulating films 310, 330, and 350 (e.g., a first inorganic encapsulating
film 310, a second inorganic encapsulating film 330, and a third inorganic encapsulating
film 350), and two organic encapsulating films 320 and 340 (e.g., a first organic
encapsulating film 320 and a second organic encapsulating film 340), and the inorganic
encapsulating films 310, 330, and 350 and the organic encapsulating films 320 and
340 may be alternately stacked.
[0075] The first inorganic encapsulating film 310, the second inorganic encapsulating film
330, and the third inorganic encapsulating film 350 may correspond to (e.g., be the
same or substantially the same as) the first and second inorganic encapsulating films
310 and 320 illustrated in FIGS. 1 through 4. For example, the first through third
inorganic encapsulating films 310, 330, and 350 may include at least one material
selected from the group consisting of silicon nitride, aluminum nitride, zirconium
nitride, titanium nitride, hafnium nitride, tantalum nitride, silicon oxide, aluminum
oxide, titanium oxide, tin oxide, cerium oxide, and silicon oxynitride. Each of the
first through third inorganic encapsulating films 310, 330, and 350 may be formed
to have a thickness of 5,000 Å to 10,000 Å. An area of the third inorganic encapsulating
film 350 may be greater than an area of the second inorganic encapsulating film 330.
Also, the area of the second inorganic encapsulating film 330 may be greater than
an area of the first inorganic encapsulating film 310.
[0076] The first organic encapsulating film 320 and the second organic encapsulating film
340 may correspond to (e.g., be the same or substantially the same as) the organic
encapsulating film 320 illustrated in FIGS. 1 through 4. For example, an area of the
first organic encapsulating film 320 may be smaller than respective areas of the first
inorganic encapsulating film 310 and the second inorganic encapsulating film 330,
and the first inorganic encapsulating film 310 and the second inorganic encapsulating
film 330 may contact each other at or in an edge of the first organic encapsulating
film 320. Likewise, the second inorganic encapsulating film 330 and the third inorganic
encapsulating film 350 may contact each other at or in an edge of the second organic
encapsulating film 340.
[0077] Also, the first organic encapsulating film 320 may include at least one first organic
region 322a having a first Young's modulus, and at least one second organic region
324a having a second Young's modulus. The second organic encapsulating film 340 may
include at least one first organic region 322b having a first Young's modulus, and
at least one second organic region 324b having a second Young's modulus.
[0078] The first organic region 322a included in the first organic encapsulating film 320
and the first organic region 322b included in the second organic encapsulating film
340 may overlap the folding region F of the flexible display device 10, and a third
width W
3 of the first organic region 322a included in the first organic encapsulating film
320 and a fourth width W
4 of the first organic region 322b included in the second organic encapsulating film
340 may be formed to be equal to or greater than the width of the folding region F.
Thus, even if the flexible display device 10 is folded or bent by a small radius of
curvature in the folding region F, stress applied in the folding region F may be suitably
or effectively distributed.
[0079] Meanwhile, the second organic encapsulating film 340 arranged outside (or above)
a stack structure of the thin film encapsulating layer 300' forms a wider curved surface
than the first organic encapsulating film 320 disposed inside (or below) the stack
structure of the thin film encapsulating layer 300', when the flexible display device
10 is bent or folded. Thus, the fourth width W
4 of the first organic region 322b included in the second organic encapsulating film
340 may be greater than the third width W
3 of the first organic region 322a included in the first organic encapsulating film
320. Accordingly, the flexible display device 10 may be smoothly folded and damage
to the thin film encapsulating layer 300' may be prevented or reduced.
[0080] Likewise, when the thin film encapsulating layer 300' includes three or more organic
encapsulating films, widths of first organic regions included in the organic encapsulating
films may be increased in order from the organic encapsulating film disposed inside
the thin film encapsulating layer 300' (e.g., the organic encapsulating film closest
to the OLED 200b) to the organic encapsulating film disposed outside the thin film
encapsulating layer 300' (e.g., the organic encapsulating film farthest from the OLED
200b).
[0081] FIG. 6 is a perspective view of an electronic device 1 according to another example
embodiment of the invention. FIG. 7 is a plan view of an organic encapsulating film
of a flexible display device 30 included in the electronic device 1 of FIG. 6.
[0082] The electronic device 1 of FIG. 6 may include a flexible display device 30. The flexible
display device 30 corresponds to the flexible display device 10 illustrated in FIGS.
1 through 4, and thus, repeated parts will not be described again here, and only the
differences will be described.
[0083] The flexible display device 30 may be rolled. A side of the flexible display device
30 may be coupled to a case 40, and the other side may be coupled to a handle 46,
thereby realizing the electronic device 1.
[0084] The case 40 may provide a space into which the flexible display device 30 is rolled,
and may include inside thereof a rod 42 coupled to a side of the flexible display
device 30. The flexible display device 30 may be wound about or around the rod 42,
as a central axis, and may be unwound from the case 40. The case 40 may include an
auxiliary display unit 44 exposed to the outside of the case 40. For example, the
auxiliary display unit 44 may display an application selection menu, and a user may
select the menu by a touch input.
[0085] The flexible display device 30 may have the same or substantially the same structure
as the flexible display device 10 illustrated in FIGS. 1 through 4. For example, the
flexible display device 30 may include the display unit including the display area
DA, the sensing unit capable of detecting a shape of the flexible display device 30,
and the controller capable of controlling the operation of the display unit according
to a result of detecting via the sensing unit, and the display unit may be encapsulated
by the thin film encapsulating layer. Also, the thin film encapsulating layer may
include at least one inorganic encapsulating film and at least one organic encapsulating
film 320'.
[0086] The organic encapsulating film 320' may include a plurality of first organic regions
322' and a plurality of second organic regions 324'. The plurality of first organic
regions 322' may be formed to extend along the first direction X, and may be alternately
arranged with the plurality of second organic regions 324' formed in the second direction
Y that crosses the first direction X. Here, the first direction X may be a direction
that is parallel (e.g., substantially parallel) to a winding axis of the flexible
display device 30, through which the flexible display device 30 is rolled, and the
second direction Y may be a direction perpendicular (e.g., substantially perpendicular)
to the first direction X, for example, a direction in which the flexible display device
30 is unwound from the case 40.
[0087] The plurality of first organic regions 322' may each have a first Young's modulus,
and the plurality of second organic regions 324' may each have a second Young's modulus
that is greater than the first Young's modulus. Like this, since the plurality of
first organic regions 322' having the first Young's modulus are arranged spaced apart
from one another in the second direction Y, a second elongation of the organic encapsulating
film 320' in the second direction Y may be greater than a first elongation of the
organic encapsulating film 320' in the first direction X. For example, a first elongation
percentage of the organic encapsulating film in the first direction may be smaller
than a second elongation percentage of the organic encapsulating film in the second
direction. Thus, stress occurring when the flexible display device 30 is rolled may
be suitably or effectively distributed.
[0088] Also, gaps among the plurality of first organic regions 322' may be decreased in
order from an end A of the organic encapsulating film 320' to another end B of the
organic encapsulating film 320'. For example, each of the first organic regions 322'
may be spaced apart from the next closest first organic region 322' by a respective
one of the gaps, and the respective sizes of the gaps may decrease in order from the
A end to the B end, for example, as shown in FIG. 7. Here, the end A is a side adjacent
to the case 40, and the other end B is a side opposite to the end A. Like this, if
the gaps among the plurality of first organic regions 322' are decreased in order
from the end A to the other end B of the organic encapsulating film 320', the second
elongation may become increased in order from the end A to the other end B. Accordingly,
when the flexible display device 30 is rolled, stress accumulated in order from the
end A to the other end B may be more suitably or effectively distributed thereby reducing
or preventing damage, such as interlayer detachment, caused by the accumulated stress.
[0089] Meanwhile, the controller may control the operation of the display unit according
to the shape of the flexible display device 30, which is sensed by the sensing unit.
For example, the controller may realize a screen (e.g., display an image) via the
display area DA, only when the flexible display device 30 is unfolded (or flat).
[0090] According to one or more of the above-described example embodiments, when the flexible
display device transforms its shape, stress may be suitably or effectively distributed,
and thus, the mechanical reliability of the flexible display device may be secured.
[0091] It should be understood that the example embodiments described herein should be considered
in a descriptive sense only and not for purposes of limitation.
[0092] While one or more example embodiments of the invention have been described with reference
to the drawings, it will be understood by those of ordinary skill in the art that
various changes in form and details may be made therein without departing from the
scope of the following claims.
1. A flexible display device (10) comprising:
a display unit (200) comprising a display area (DA) capable of displaying an image;
and
a thin film encapsulating layer (300) encapsulating the display unit (200) and comprising
a first inorganic encapsulating film (310), an organic encapsulating film (320) on
the first inorganic encapsulating film (310), and a second inorganic encapsulating
film (330) on the organic encapsulating film (320),
wherein the organic encapsulating film (320) comprises at least one first organic
region (322) and at least one second organic region (324),
the at least one first organic region (322) and the at least one second organic region
(324) extend both along a first direction (X), the at least one first organic region
(322) and the at least one second organic region (324) are aligned with each other,
wherein the at least one first organic region (322) has a first Young's modulus and
the at least one second organic region (324) has a second Young's modulus, wherein
the first Young's modulus is different from the second Young's modulus, and
wherein the areas of the first inorganic encapsulating film (310) and the second inorganic
encapsulating film (330) are larger than the area of the organic encapsulating film
(320), such that the entire organic encapsulating film (320) is covered by the first
inorganic encapsulating film (310) and the second inorganic encapsulating film (330),
wherein the first Young's modulus is smaller than the second Young's modulus, and
wherein the flexible display device (10) comprises at least one folding region (F)
and the at least one folding region (F) extends along the first direction (X), and
the at least one first organic region (322) overlaps the at least one folding region
(F).
2. A flexible display device (10) according to Claim 1, wherein the at least one first
organic region (322) comprises a first organic material and the at least one second
organic region (324) comprises a second organic material that is different from the
first organic material.
3. A flexible display device (10) of claim 2, wherein the first organic material comprises
a silicon-based resin, and the second organic material comprises at least one selected
from an acryl-based resin and an epoxy-based resin.
4. A flexible display device (10) according to claim 1, wherein the ratio of the second
Young's modulus to the first Young's modulus is 4×10 through 2×104.
5. A flexible display device (10) according to claim 1, wherein the at least one folding
region (F) is located at the at least one first organic region (322).
6. A flexible display device (10) according to claim 1 or 5, wherein the width (W2) of the at least one first organic region (322) is equal to or greater than the width
(W1) of the at least one folding region (F).
7. A flexible display device (10) according to any preceding claim, wherein the at least
one first organic region (322) and the at least one second organic region (324) are
alternately arranged, repeatedly, along a second direction (Y) that crosses the first
direction (X).
8. A flexible display device (10) according to claim 7, wherein the first direction (X)
and the second direction (Y) are perpendicular to each other.
9. A flexible display device (10) according to claim 7 or 8, wherein the flexible display
device (10) is windable around an axis parallel to the first direction (X).
10. A flexible display device (10) according to claims 7 or 8, wherein a first elongation
percentage of the organic encapsulating film (320) in the first direction (X) is smaller
than a second elongation percentage of the organic encapsulating film (320) in the
second direction (Y).
11. A flexible display device (10) according to any preceding claim, wherein the display
unit (200) comprises an organic light-emitting device and a thin film transistor electrically
coupled to the organic light-emitting device.
12. A flexible display device (10) according to any preceding claim, wherein the flexible
display device (10) comprises a plurality of the inorganic encapsulating film (310,
330, 350) and a plurality of the organic encapsulating film (320, 340), and the inorganic
encapsulating films (310, 330, 350) and the organic encapsulating films (320, 340)
are alternately stacked.
13. A flexible display device (10) according to any preceding claim, further comprising
a flexible substrate (100), wherein the display unit (200) is located between the
flexible substrate (100) and the thin film encapsulating layer (300).
14. A flexible display device according to any preceding claim, comprising:
a sensing unit capable of detecting a shape of the flexible display device; and
a controller capable of controlling an operation of the display unit, according to
the shape detected by the sensing unit.
1. Flexible Anzeigevorrichtung (10), umfassend:
eine Anzeigeeinheit (200), umfassend eine Anzeigefläche (DA), die imstande ist, ein
Bild anzuzeigen; und
eine Dünnfilmverkapselungsschicht (300), die die Anzeigeeinheit (200) verkapselt und
einen ersten anorganischen Verkapselungsfilm (310), einen organischen Verkapselungsfilm
(320) auf dem ersten anorganischen Verkapselungsfilm (310) und einen zweiten anorganischen
Verkapselungsfilm (330) auf dem organischen Verkapselungsfilm (320) umfasst,
wobei der organische Verkapselungsfilm (320) mindestens eine erste organische Region
(322) und mindestens eine zweite organische Region (324) umfasst,
wobei die mindestens eine erste organische Region (322) und die mindestens eine zweite
organische Region (324) sich beide entlang einer ersten Richtung (X) erstrecken, die
mindestens eine erste organische Region (322) und die mindestens eine zweite organische
Region (324) miteinander ausgerichtet sind, wobei die mindestens eine erste organische
Region (322) einen ersten Youngschen Modul aufweist und die mindestens eine zweite
organische Region (324) einen zweiten Youngschen Modul aufweist, wobei der erste Youngsche
Modul von dem zweiten Youngschen Modul verschieden ist, und
wobei die Flächen des ersten anorganischen Verkapselungsfilms (310) und des zweiten
anorganischen Verkapselungsfilms (330) größer sind als die Fläche des organischen
Verkapselungsfilms (320), so dass der gesamte organische Verkapselungsfilm (320) von
dem ersten anorganischen Verkapselungsfilm (310) und dem zweiten anorganischen Verkapselungsfilm
(330) bedeckt wird,
wobei der erste Youngsche Modul kleiner ist als der zweite Youngsche Modul, und
wobei die flexible Anzeigevorrichtung (10) mindestens eine klappbare Region (F) umfasst
und die mindestens eine klappbare Region (F) sich entlang der ersten Richtung (X)
erstreckt und
die mindestens eine erste organische Region (322) die mindestens eine klappbare Region
(F) überlappt.
2. Flexible Anzeigevorrichtung (10) nach Anspruch 1, wobei die mindestens eine erste
organische Region (322) ein erstes organisches Material umfasst und die mindestens
eine zweite organische Region (324) ein zweites organisches Material umfasst, das
von dem ersten organischen Material verschieden ist.
3. Flexible Anzeigevorrichtung (10) nach Anspruch 2, wobei das erste organische Material
ein Silicium-basiertes Harz umfasst und das zweite organische Material mindestens
eines umfasst, ausgewählt aus einem Acryl-basierten Harz und einem Epoxybasierten
Harz.
4. Flexible Anzeigevorrichtung (10) nach Anspruch 1, wobei das Verhältnis des zweiten
Youngschen Moduls zu dem ersten Youngschen Modul 4×10 bis 2×104 beträgt.
5. Flexible Anzeigevorrichtung (10) nach Anspruch 1, wobei die mindestens eine klappbare
Region (F) an der mindestens einen ersten organischen Region (322) angeordnet ist.
6. Flexible Anzeigevorrichtung (10) nach Anspruch 1 oder 5, wobei die Breite (W2) der mindestens einen ersten organischen Region (322) gleich der oder größer als
die Breite (W1) der mindestens einen klappbaren Region (F) ist.
7. Flexible Anzeigevorrichtung (10) nach einem der vorhergehenden Ansprüche, wobei die
mindestens eine erste organische Region (322) und die mindestens eine zweite organische
Region (324) entlang einer zweiten Richtung (Y), die die erste Richtung (X) quert,
wiederholt abwechselnd angeordnet sind.
8. Flexible Anzeigevorrichtung (10) nach Anspruch 7, wobei die erste Richtung (X) und
die zweite Richtung (Y) senkrecht zueinander sind.
9. Flexible Anzeigevorrichtung (10) nach Anspruch 7 oder 8, wobei die flexible Anzeigevorrichtung
(10) um eine Achse parallel zu der ersten Richtung (X) wickelbar ist.
10. Flexible Anzeigevorrichtung (10) nach den Ansprüchen 7 oder 8, wobei ein erster Längungsprozentanteil
des organischen Verkapselungsfilms (320) in der ersten Richtung (X) kleiner ist als
ein zweiter Längungsprozentanteil des organischen Verkapselungsfilms (320) in der
zweiten Richtung (Y).
11. Flexible Anzeigevorrichtung (10) nach einem der vorhergehenden Ansprüche, wobei die
Anzeigeeinheit (200) eine organische, lichtemittierendeVorrichtung und einen Dünnfilmtransistor,
der an die organische, lichtemittierende Vorrichtung elektrisch gekoppelt ist, umfasst.
12. Flexible Anzeigevorrichtung (10) nach einem der vorhergehenden Ansprüche, wobei die
flexible Anzeigevorrichtung (10) eine Vielzahl des anorganischen Verkapselungsfilms
(310, 330, 350) und eine Vielzahl des organischen Verkapselungsfilms (320, 340) umfasst
und die anorganischen Verkapselungsfilme (310, 330, 350) und die organischen Verkapselungsfilme
(320, 340) abwechselnd gestapelt sind.
13. Flexible Anzeigevorrichtung (10) nach einem der vorhergehenden Ansprüche, ferner umfassend
ein flexibles Substrat (100), wobei die Anzeigeeinheit (200) zwischen dem flexiblen
Substrat (100) und der Dünnfilmverkapselungsschicht (300) angeordnet ist.
14. Flexible Anzeigevorrichtung nach einem der vorhergehenden Ansprüche, umfassend:
eine Erfassungseinheit, die imstande ist, eine Form der flexiblen Anzeigevorrichtung
zu detektieren; und
eine Steuerung, die imstande ist, einen Betrieb der Anzeigeeinheit gemäß der durch
die Erfassungseinheit detektierten Form zu steuern.
1. Dispositif d'affichage flexible (10) comprenant :
une unité d'affichage (200) qui comprend une zone d'affichage (DA) qui est capable
d'afficher une image ; et
une couche d'encapsulation à film mince (300) qui encapsule l'unité d'affichage (200)
et qui comprend un premier film d'encapsulation inorganique (310), un film d'encapsulation
organique (320) sur le premier film d'encapsulation inorganique (310) et un second
film d'encapsulation inorganique (330) sur le film d'encapsulation organique (320),
dans lequel le film d'encapsulation organique (320) comprend au moins une première
région organique (322) et au moins une seconde région organique (324),
l'au moins une première région organique (322) et l'au moins une seconde région organique
(324) s'étendant toutes deux suivant une première direction (X), l'au moins une première
région organique (322) et l'au moins une seconde région organique (324) étant alignées
l'une avec l'autre, dans lequel l'au moins une première région organique (322) présente
un premier module de Young et l'au moins une seconde région organique (324) présente
un second module de Young, dans lequel le premier module de Young est différent du
second module de Young ; et
dans lequel les zones du premier film d'encapsulation inorganique (310) et du second
film d'encapsulation inorganique (330) sont plus importantes que la zone du film d'encapsulation
organique (320), de telle sorte que le film d'encapsulation organique complet (320)
est recouvert par le premier film d'encapsulation inorganique (310) et par le second
film d'encapsulation inorganique (330) ;
dans lequel le premier module de Young est inférieur au second module de Young ; et
dans lequel le dispositif d'affichage flexible (10) comprend au moins une région de
repliement (F) et l'au moins une région de repliement (F) s'étend suivant la première
direction (X) ; et
l'au moins une première région organique (322) chevauche l'au moins une région de
repliement (F).
2. Dispositif d'affichage flexible (10) selon la revendication 1, dans lequel l'au moins
une première région organique (322) comprend un premier matériau organique et l'au
moins une seconde région organique (324) comprend un second matériau organique qui
est différent du premier matériau organique.
3. Dispositif d'affichage flexible (10) selon la revendication 2, dans lequel le premier
matériau organique comprend une résine à base de silicone et le second matériau organique
comprend au moins une sélectionnée parmi une résine à base d'acryle et une résine
à base d'époxy.
4. Dispositif d'affichage flexible (10) selon la revendication 1, dans lequel le rapport
du second module de Young sur le premier module de Young est de 4 x 10 à 2 x 104.
5. Dispositif d'affichage flexible (10) selon la revendication 1, dans lequel l'au moins
une région de repliement (F) est localisée au niveau de l'au moins une première région
organique (322).
6. Dispositif d'affichage flexible (10) selon la revendication 1 ou 5, dans lequel la
largeur (W2) de l'au moins une première région organique (322) est égale à la largeur (W1) de l'au moins une région de repliement (F) ou est plus importante que celle-ci.
7. Dispositif d'affichage flexible (10) selon l'une quelconque des revendications qui
précèdent, dans lequel l'au moins une première région organique (322) et l'au moins
une seconde région organique (324) sont agencées en alternance, de façon répétée,
suivant une seconde direction (Y) qui croise la première direction (X).
8. Dispositif d'affichage flexible (10) selon la revendication 7, dans lequel la première
direction (X) et la seconde direction (Y) sont perpendiculaires l'une à l'autre.
9. Dispositif d'affichage flexible (10) selon la revendication 7 ou 8, dans lequel le
dispositif d'affichage flexible (10) peut être enroulé autour d'un axe qui est parallèle
à la première direction (X).
10. Dispositif d'affichage flexible (10) selon la revendication 7 ou 8, dans lequel un
premier pourcentage d'allongement du film d'encapsulation organique (320) dans la
première direction (X) est inférieur à un second pourcentage d'allongement du film
d'encapsulation organique (320) dans la seconde direction (Y).
11. Dispositif d'affichage flexible (10) selon l'une quelconque des revendications qui
précèdent, dans lequel l'unité d'affichage (200) comprend un dispositif électroluminescent
organique et un transistor à film mince qui est couplé électriquement au dispositif
électroluminescent organique.
12. Dispositif d'affichage flexible (10) selon l'une quelconque des revendications qui
précèdent, dans lequel le dispositif d'affichage flexible (10) comprend une pluralité
du film d'encapsulation inorganique (310, 330, 350) et une pluralité du film d'encapsulation
organique (320, 340), et les films d'encapsulation inorganiques (310, 330, 350) et
les films d'encapsulation organiques (320, 340) sont empilés en alternance.
13. Dispositif d'affichage flexible (10) selon l'une quelconque des revendications qui
précèdent, comprenant en outre un substrat flexible (100), dans lequel l'unité d'affichage
(200) est localisée entre le substrat flexible (100) et la couche d'encapsulation
à film mince (300).
14. Dispositif d'affichage flexible selon l'une quelconque des revendications qui précèdent,
comprenant :
une unité de détection qui est capable de détecter une forme du dispositif d'affichage
flexible ; et
un contrôleur qui est capable de commander un fonctionnement de l'unité d'affichage,
en fonction de la forme détectée par l'unité de détection.